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Linear Kinematics
Kinematic Equations
How Fast?
Recall: a(t) =𝑑𝑣
𝑑𝑡
General Case: Variable Acceleration
dv = a(t)dt
Dv 𝑣0 =𝑣𝑑𝑣 𝑡0 =
𝑡𝑎 𝑡 𝑑𝑡
How fast?
Special case: Constant Acceleration
For constant acceleration, a(t) = a, so…
Dv =𝑡0
𝑡𝑎 𝑡 𝑑𝑡 = a
𝑡0
𝑡𝑑𝑡 = aDt
If we let t0 = 0, then…
v – v0 = at (or v = v0 + at )
How far?
Recall: v(t) =𝑑𝑥
𝑑𝑡
dx = v(t)dt
Dx 𝑥0=𝑥𝑑𝑥= 0
𝑡𝑣 𝑡 𝑑𝑡
Dx 0=𝑡(𝑣0 + 𝑎𝑡)𝑑𝑡
x – x0 = v0t + 1
2at2
Deriving the 5 kinematic equations
for constant acceleration
Displacement: x – x0
Initial velocity: v0
Final velocity: v
Acceleration: a
Time: t
Each of the two equations derived thus far has four of these five variables. We just need any three of these five in order to find the other two.
If given x – x0, v0, v, find a and t.
You cannot use just Eqn. 1 or Eqn. 2 alone.
(Both have a and t in them.)
You can manipulate the equations to eliminate the unknowns. For example, eliminate t:
• Use Eqn. 1 to solve for t = 𝑣−𝑣0
𝑎
• Substitute this expression in Eqn.2
• Do algebra… v2 – v02 = 2a(x – x0)
Or, eliminate a:
• Use Eqn. 1 to solve for a = 𝑣−𝑣0
𝑡• Substitute this expression in Eqn.2
• Do algebra… x – x0 = 1
2(v + v0)t
Or, eliminate v0:• Use Eqn. 1 to solve for v0 = v – at
• Substitute this expression in Eqn.2
• Do algebra… x – x0 = vt –1
2at2
The 5 kinematic equations
for constant acceleration.
v = v0 + at
x – x0 = v0t + 1
2at2
v2 – v02 = 2a(x – x0)
x – x0 = 1
2(v + v0)t
x – x0 = vt –1
2at2
Example #1: Free Fall Ball
A pitcher throws a ball straight up. The ball leaves the pitcher’s hand at 25 m/s.
• How long until the ball reaches its highest point?
• How high does the ball go?
• How long until the ball reaches a height of 25 meters (above the release point)?
Example #2: Freely Falling Elevator
An elevator cab is 120 m above the ground level. The elevator cable breaks.
• What is the velocity of the cab when it gets to the ground level?
• How long does it take the elevator to fall?
• What is the speed of the elevator at the “half-way” point?
Example #3: Skydiving
A skydiver jumps out of a hovering helicopter and falls freely for 50 m before deploying her parachute. The skydiver then “decelerates” at 2.0 m/s2 and reaches the ground at 3.0 m/s.
• How long was the skydiver in the air?
• At what height above the ground did the skydiver bail out of the helicopter?
Motion in 1-Dimension with
Variable Acceleration
A particle moves according the equation
x(t) = 3.0t2 – 1.0t3
where x is in meters and t is in seconds.
• Find v(t) and a(t).
• Find the time when the particle reaches xmax.
• Find the displacement during the first 4.0 s.
• Calculate v(t = 4.0 s) and a(t = 4.0 s)
• Calculate the path that the particle covers in the first 4.0 s.
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